| Code: | EA0045 | Acronym: | LEA IV |
| Keywords | |
|---|---|
| Classification | Keyword |
| OFICIAL | Technological Sciences |
| Active? | Yes |
| Responsible unit: | Department of Chemical and Biological Engineering |
| Course/CS Responsible: | Master in Environmental Engineering |
| Acronym | No. of Students | Study Plan | Curricular Years | Credits UCN | Credits ECTS | Contact hours | Total Time |
|---|---|---|---|---|---|---|---|
| MIEA | 24 | Syllabus since 2006/07 | 4 | - | 6 | 56 | 162 |
The main objectives are:
- to provide an adequate knowledge of environmental quality monitoring methodologies and treatability studies in the field of liquid effluents, and be able to use them in the formulation, resolution and discussion of problems, as well as in the definition of solutions and anticipating and preventing these problems;
- to acquire knowledge of network modeling to develop analysis processes based on the simulation of different scenarios using computational tools;
- to develop personal and professional skills and attitudes, including experimentation and discovery of knowledge, systemic thinking, personal skills and attitudes, and professional skills and attitudes;
- to develop communication skills, in particular, technical results and group cooperation skills.
At the end of this course unit students will acquire:
- knowledge in methodologies for environmental quality monitoring and treatment technologies for liquid effluents and, be capable of using them in the design of problem solutions and in the forecast and prediction of those problems, including potential counterproductive effects;
- knowledge in the network modelling and in the simulation of different working conditions;
- personal and professional skills and attributes, namely experimentation and knowledge discovery, system thinking, personal skills and professional skills and attitudes;
- interpersonal skills: teamwork and communication;
- knowledge for conceiving, designing, implementing and operating systems in the enterprise and societal context.
Module 1: Assays in the WWTP of FEUP
- Biological treatment of a simulated urban wastewater in an activated sludge reactor: operation, biokinetic parameters and secondary clarifier design;
- Application of a coagulation/flocculation/clarification process for the treatment of a simulated textile wastewater in continuous mode using lab and industrial scale facilities: operation, coagulant/flocculant dosage and, rapid mixer tank and clarifier design;
- Photocatalytic/Electrocatalytic membrane reactor for the tertiary treatment of urban wastewaters towards the removal of contaminants of emerging concern;
- Electrochemical advanced oxidation processes for water treatment.
Module 2: Modeling of water supply systems - water quality modeling
- Worksheet 0: Introduction to EPANET;
- Worksheet 2: Network pressure modelling and control;
- Worksheet 3: Water quality analysis.
Module 3: Non-potable water harvesting and reuse
- 1. Introduction: legal definitions; legislation and normalization research; non-potable drainage and storage;
- 2. Non-potable water characterization: laboratorial analysis;
- 3. Reuse potential: results analysis based on the legal and normative framework developed earlier; treatment processes definition.
Module 1 and 3: Laboratory classes (alternating face-to-face classes).
Experimental works, analysis and discussion of the results. Synchronous information sessions.
Module 2: Remote classes and synchronous information sessions.
| Designation | Weight (%) |
|---|---|
| Trabalho escrito | 50,00 |
| Apresentação/discussão de um trabalho científico | 35,00 |
| Participação presencial | 15,00 |
| Total: | 100,00 |
| Designation | Time (hours) |
|---|---|
| Frequência das aulas | 56,00 |
| Estudo autónomo | 50,00 |
| Apresentação/discussão de um trabalho científico | 6,00 |
| Trabalho escrito | 50,00 |
| Total: | 162,00 |
- Students must attend all the laboratory classes, including the ones that are protected by the article 4, line) a and b).
- Students have to do all the lab assignments and reach a minimum grade of 10 in each module.
The final grade (NF) is given by the average grade of the three modules:
NF =1/3 Module 1 + 1/3 Module 2 + 1/3 Module 3
The classification in module 1 is obtained as follows: i) grade of the final report (50%); the final report includes the results and discussion of the 4 experimental works and, should be delivered, in paper version, to professor Vítor J.P. Vilar, until 12th May 2021; ii) grade of the oral presentation (35%) related to one of the laboratorial works done in the class, selected by the teacher; iii) continuous assessment based on classroom performance (15%).
Module 2 grade = 80% (average grade of the final report, including the resolution of 2 worksheets) + 20% (grade of the continuous assessment)
Module 3 = grade of the final report pondered by the self-evaluation of the workgroup.
n.a.
n.a.
To improve the final grade is mandatory to frequent the course in the subsequent occurrence.